Influence of sintering temperature on the properties of the screen-printed anode of the LSMO4 Ruddlesden‒Popper perovskite for intermediate-temperature solid oxide fuel cells

This study investigates the influence of the sintering temperature on the properties of the screen-printed anode of the La0.6Sr1.4MnO4 (LSMO4) Ruddlesden‒Popper (R–P) perovskite for intermediate-temperature solid oxide fuel cell applications. LSMO4 precursor powders with a K2NiF4-type (I4/mmm space...

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Published in:International Journal of Hydrogen Energy
Main Author: Zainon A.N.; Somalu M.R.; Bahrain A.M.K.; Muchtar A.; Baharuddin N.A.; S.A M.A.; Abdul Samat A.; Osman N.; Azad A.K.
Format: Article
Language:English
Published: Elsevier Ltd 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85164346767&doi=10.1016%2fj.ijhydene.2023.06.139&partnerID=40&md5=9322b225ae877679bb8c48b6250186bb
id 2-s2.0-85164346767
spelling 2-s2.0-85164346767
Zainon A.N.; Somalu M.R.; Bahrain A.M.K.; Muchtar A.; Baharuddin N.A.; S.A M.A.; Abdul Samat A.; Osman N.; Azad A.K.
Influence of sintering temperature on the properties of the screen-printed anode of the LSMO4 Ruddlesden‒Popper perovskite for intermediate-temperature solid oxide fuel cells
2023
International Journal of Hydrogen Energy
48
97
10.1016/j.ijhydene.2023.06.139
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85164346767&doi=10.1016%2fj.ijhydene.2023.06.139&partnerID=40&md5=9322b225ae877679bb8c48b6250186bb
This study investigates the influence of the sintering temperature on the properties of the screen-printed anode of the La0.6Sr1.4MnO4 (LSMO4) Ruddlesden‒Popper (R–P) perovskite for intermediate-temperature solid oxide fuel cell applications. LSMO4 precursor powders with a K2NiF4-type (I4/mmm space group) tetragonal structure, density of 5.823 g/cm3, and specific surface area of 2.121 m2/g were successfully synthesised through the citrate-nitrate method. Initially, the characterisation of LSMO4 anode powders was analyzed by X-ray diffraction, field emission scanning electron microscopy (FESEM), and Brunauer-Emmett-Teller analysis. Subsequently, an LSMO4 film was screen-printed onto LSGM substrates and sintered at four different temperatures: 1000 °C, 1100 °C, 1200 °C, and 1300 °C. The effect of the sintering temperature on the microstructure, electronic conductivity, and electrochemical performance of the screen-printed anode film was analyzed by FESEM, DC 4-point probe method, and electrochemical impedance spectroscopy (EIS). The different values of average surface porosities (21–35%) and anode film thickness (14–41 μm) resulting from various sintering temperatures significantly influenced the electronic conductivity and electrochemical performance of the anode films. The electrical conductivities of the anode films sintered at 1000 °C, 1100 °C, 1200 °C, and 1300 °C were found to be 1.53 S/cm, 1.95 S/cm, 3.30 S/cm, and 3.73 S/cm at 800 °C, respectively. The activation energy of anodes sintered at 1000–1300 °C was in the range of 0.61–0.72 eV. The EIS analysis showed that the LSMO4 anode film sintered at 1000 °C possessed the lowest ASR of 1.52 Ωcm2 at 800 °C under a wet gas mixture environment, 3 vol% H2O – 97 vol% (H2: N2 = 10 : 90). The findings of this study provide valuable insights into the design and optimization of R–P perovskite based anode materials. © 2023 Hydrogen Energy Publications LLC
Elsevier Ltd
3603199
English
Article

author Zainon A.N.; Somalu M.R.; Bahrain A.M.K.; Muchtar A.; Baharuddin N.A.; S.A M.A.; Abdul Samat A.; Osman N.; Azad A.K.
spellingShingle Zainon A.N.; Somalu M.R.; Bahrain A.M.K.; Muchtar A.; Baharuddin N.A.; S.A M.A.; Abdul Samat A.; Osman N.; Azad A.K.
Influence of sintering temperature on the properties of the screen-printed anode of the LSMO4 Ruddlesden‒Popper perovskite for intermediate-temperature solid oxide fuel cells
author_facet Zainon A.N.; Somalu M.R.; Bahrain A.M.K.; Muchtar A.; Baharuddin N.A.; S.A M.A.; Abdul Samat A.; Osman N.; Azad A.K.
author_sort Zainon A.N.; Somalu M.R.; Bahrain A.M.K.; Muchtar A.; Baharuddin N.A.; S.A M.A.; Abdul Samat A.; Osman N.; Azad A.K.
title Influence of sintering temperature on the properties of the screen-printed anode of the LSMO4 Ruddlesden‒Popper perovskite for intermediate-temperature solid oxide fuel cells
title_short Influence of sintering temperature on the properties of the screen-printed anode of the LSMO4 Ruddlesden‒Popper perovskite for intermediate-temperature solid oxide fuel cells
title_full Influence of sintering temperature on the properties of the screen-printed anode of the LSMO4 Ruddlesden‒Popper perovskite for intermediate-temperature solid oxide fuel cells
title_fullStr Influence of sintering temperature on the properties of the screen-printed anode of the LSMO4 Ruddlesden‒Popper perovskite for intermediate-temperature solid oxide fuel cells
title_full_unstemmed Influence of sintering temperature on the properties of the screen-printed anode of the LSMO4 Ruddlesden‒Popper perovskite for intermediate-temperature solid oxide fuel cells
title_sort Influence of sintering temperature on the properties of the screen-printed anode of the LSMO4 Ruddlesden‒Popper perovskite for intermediate-temperature solid oxide fuel cells
publishDate 2023
container_title International Journal of Hydrogen Energy
container_volume 48
container_issue 97
doi_str_mv 10.1016/j.ijhydene.2023.06.139
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85164346767&doi=10.1016%2fj.ijhydene.2023.06.139&partnerID=40&md5=9322b225ae877679bb8c48b6250186bb
description This study investigates the influence of the sintering temperature on the properties of the screen-printed anode of the La0.6Sr1.4MnO4 (LSMO4) Ruddlesden‒Popper (R–P) perovskite for intermediate-temperature solid oxide fuel cell applications. LSMO4 precursor powders with a K2NiF4-type (I4/mmm space group) tetragonal structure, density of 5.823 g/cm3, and specific surface area of 2.121 m2/g were successfully synthesised through the citrate-nitrate method. Initially, the characterisation of LSMO4 anode powders was analyzed by X-ray diffraction, field emission scanning electron microscopy (FESEM), and Brunauer-Emmett-Teller analysis. Subsequently, an LSMO4 film was screen-printed onto LSGM substrates and sintered at four different temperatures: 1000 °C, 1100 °C, 1200 °C, and 1300 °C. The effect of the sintering temperature on the microstructure, electronic conductivity, and electrochemical performance of the screen-printed anode film was analyzed by FESEM, DC 4-point probe method, and electrochemical impedance spectroscopy (EIS). The different values of average surface porosities (21–35%) and anode film thickness (14–41 μm) resulting from various sintering temperatures significantly influenced the electronic conductivity and electrochemical performance of the anode films. The electrical conductivities of the anode films sintered at 1000 °C, 1100 °C, 1200 °C, and 1300 °C were found to be 1.53 S/cm, 1.95 S/cm, 3.30 S/cm, and 3.73 S/cm at 800 °C, respectively. The activation energy of anodes sintered at 1000–1300 °C was in the range of 0.61–0.72 eV. The EIS analysis showed that the LSMO4 anode film sintered at 1000 °C possessed the lowest ASR of 1.52 Ωcm2 at 800 °C under a wet gas mixture environment, 3 vol% H2O – 97 vol% (H2: N2 = 10 : 90). The findings of this study provide valuable insights into the design and optimization of R–P perovskite based anode materials. © 2023 Hydrogen Energy Publications LLC
publisher Elsevier Ltd
issn 3603199
language English
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